Remmerswaal Wouter A, Elferink Hidde, Houthuijs Kas J, Hansen Thomas, Ter Braak Floor, Berden Giel, van der Vorm Stefan, Martens Jonathan, Oomens Jos, van der Marel Gijsbert A, Boltje Thomas J, Codée Jeroen D C
Leiden Institute of Chemistry, Leiden University, Einsteinweg 55, Leiden 2300 RA, The Netherlands.
Institute for Molecules and Materials, Radboud University, Heyendaalseweg 135, Nijmegen 6525 AJ, The Netherlands.
J Org Chem. 2024 Feb 2;89(3):1618-1625. doi: 10.1021/acs.joc.3c02262. Epub 2024 Jan 18.
Minimal structural differences in the structure of glycosyl donors can have a tremendous impact on their reactivity and the stereochemical outcome of their glycosylation reactions. Here, we used a combination of systematic glycosylation reactions, the characterization of potential reactive intermediates, and in-depth computational studies to study the disparate behavior of glycosylation systems involving benzylidene glucosyl and mannosyl donors. While these systems have been studied extensively, no satisfactory explanations are available for the differences observed between the 3--benzyl/benzoyl mannose and glucose donor systems. The potential energy surfaces of the different reaction pathways available for these donors provide an explanation for the contrasting behavior of seemingly very similar systems. Evidence has been provided for the intermediacy of benzylidene mannosyl 1,3-dioxanium ions, while the formation of the analogous 1,3-glucosyl dioxanium ions is thwarted by a prohibitively strong flagpole interaction of the C-2-O-benzyl group with the C-5 proton in moving toward the transition state, in which the glucose ring adopts a -conformation. This study provides an explanation for the intermediacy of 1,3-dioxanium ions in the mannosyl system and an answer to why these do not form from analogous glucosyl donors.
糖基供体结构中最小的结构差异可能会对其反应活性及其糖基化反应的立体化学结果产生巨大影响。在此,我们结合系统的糖基化反应、潜在反应中间体的表征以及深入的计算研究,来研究涉及亚苄基葡萄糖基和甘露糖基供体的糖基化系统的不同行为。虽然这些系统已被广泛研究,但对于在3 - 苄基/苯甲酰基甘露糖和葡萄糖供体系统之间观察到的差异,尚无令人满意的解释。这些供体可用的不同反应途径的势能面为看似非常相似的系统的对比行为提供了解释。已为亚苄基甘露糖基1,3 - 二氧杂环己烷离子的中间体提供了证据,而在向过渡态移动时,C - 2 - O - 苄基与C - 5质子之间极强的旗杆相互作用阻碍了类似的1,3 - 葡萄糖基二氧杂环己烷离子的形成,在该过渡态中葡萄糖环采取α-构象。这项研究为1,3 - 二氧杂环己烷离子在甘露糖基系统中的中间体作用提供了解释,并回答了为什么这些离子不会从类似的葡萄糖基供体形成的问题。